Kramers nodal lines in intercalated TaS2 superconductors
Abstract
Abstract Kramers degeneracy is one fundamental embodiment of the quantum mechanical nature of particles with half-integer spin under time reversal symmetry. Under the chiral and noncentrosymmetric achiral crystalline symmetries, Kramers degeneracy emerges respectively as topological quasiparticles of Weyl fermions and Kramers nodal lines (KNLs), anchoring the Berry phase-related physics of electrons. However, an experimental demonstration for ideal KNLs well isolated at the Fermi level is lacking. Here, we establish a class of noncentrosymmetric achiral intercalated transition metal dichalcogenide superconductors with large Ising-type spin-orbit coupling, represented by In x TaS2, to host an ideal KNL phase. We provide evidence from angle-resolved photoemission spectroscopy with spin resolution, angle-dependent quantum oscillation measurements, and ab-initio calculations. Our work not only provides a realistic platform for realizing and tuning KNLs in layered materials, but also paves the way for exploring the interplay between KNLs and superconductivity, as well as applications pertaining to spintronics, valleytronics, and nonlinear transport.
Article Details
Authors (27)
Yichen Zhang
Institute of Carbon Neutrality, Sino-French Institute for Earth System Science, College of Urban and Environmental Sciences, Peking University
Yuxiang Gao
Aki Pulkkinen
Xingyao Guo
Jianwei Huang
Yucheng Guo
Ziqin Yue
Ji Seop Oh
Alex Moon
Mohamed Oudah
Xue-Jian Gao
Alberto Marmodoro
Alexei Fedorov
Sung-Kwan Mo
Makoto Hashimoto
Stanford Synchrotron Radiation Lightsource
Donghui Lu
Stanford Synchrotron Radiation Lightsource
Anil Rajapitamahuni
National Synchrotron Light Source II, Brookhaven National Laboratory
Elio Vescovo
National Synchrotron Light Source II
Junichiro Kono
Alannah M. Hallas
Robert J. Birgeneau
Luis Balicas
Ján Minár
Pavan Hosur
Kam Tuen Law
Emilia Morosan
Ming Yi